EFFECTS OF MAGNETOSPHERIC ELECTRONS ON POLAR PLASMA OUTFLOW - A SEMIKINETIC MODEL

被引:32
作者
HO, CW
HORWITZ, JL
SINGH, N
WILSON, GR
MOORE, TE
机构
[1] UNIV ALABAMA, CTR SPACE PLASMA & AERON RES, HUNTSVILLE, AL 35899 USA
[2] NASA, GEORGE C MARSHALL SPACE FLIGHT CTR, HUNTSVILLE, AL 35812 USA
关键词
D O I
10.1029/91JA03158
中图分类号
P1 [天文学];
学科分类号
0704 ;
摘要
A semikinetic model for the study of the effect of hot magnetospheric electrons on polar plasma outflow adiabatic, parallel-drifting gyro-centers injected as the upgoing portions of drifting bi-Maxwellian distributions at 1.6 R(E), while the electrons am treated as a massless neutralizing fluid. As a first approach to understanding the effects of hot magnetospheric electrons on the outflow, we consider electron temperature profiles which increase from low temperatures at the ionospheric levels to high temperatures at high altitudes. The electric field is determined by both the electron temperature and its gradient. The electric field produced by the electron temperature alone generally accelerates ions outward while that associated with the electron temperature gradient increases the potential barrier and inhibits the outflow. For typical polar wind stream conditions, electron temperature gradients exceeding 3 x 10(4) K/R(E) cause reflection of much of the ion stream back downward toward the ionosphere. Under these circumstances the H+ outflow forms two counterstreaming beams at altitudes below the reflecting potential barrier and a cooler and faster transmitted beam at high altitudes. Above the potential barrier, the O+ density decreases by 7 orders of magnitude for a very large electron temperature gradient. For the case of an electron temperature profile established by thermal conduction the results show inhibition of polar plasma outflow very near the lower boundary, but continuous acceleration of the escaping ions along most of the flux tube. H+ shows a continuous decrease in net outward flux from 3 x 10(7) ions cm-2 s-1 when the electron temperature is isothermal at 4400 K to 1.5 x 10(7) ions cm-2 s-1 when the upper boundary temperature is increased to 1 x 10(6) K. On the other hand, the flux of O+ exhibits a rise and fall with upper boundary electron temperature with a peak of 1.1 x 10(7) e ions cm-2 s-1 when the upper boundary electron temperature is approximately equal to 2 x 10(5) K.
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收藏
页码:8425 / 8437
页数:13
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